The Management of Food Waste Recycling for a Sustainable Future: A Case Study on South Korea
Abstract
:1. Introduction
2. Methodology
3. Waste Management Acts and Policies in South Korea
3.1. Changes in Acts and Policies by Era
3.1.1. Filth Cleaning Act (1961–1977)
3.1.2. Environmental Conservation Act (1978–1986)
3.1.3. Waste Management Act (1986–1992)
3.1.4. Division (1993–Present)
4. The Generation and Management of Food Waste
4.1. Food Waste Disposal and Classification
4.2. The Types of Food Waste Recycling Processes
Facilities Used to Process Food Waste into Animal Feed and Compost
4.3. Methods Used to Process Food Waste into Compost, Animal Feed, and Biogas
4.3.1. Compost
4.3.2. Animal Feed
4.3.3. Biogas
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Categories | Number of Facilities | Distribution of Facilities Based on Capacity | |
---|---|---|---|
>30 Tonnes/Day | <30 Tonnes/Day | ||
Feed | 26 | 25 | 1 |
Compost | 28 | 19 | 9 |
Others | 21 | 9 | 12 |
Categories | Number of Productions (Thousand Tonnes/Year) | Method of Usage (Thousand Tonnes/Year) | Usage Rate (%) | ||
---|---|---|---|---|---|
Paid Sales | Provided Free of Charge | Self-Generated and Use 1 | |||
Feed | 67.0 | 2.8 | 44.3 | - | 37.3 |
Compost | 59.4 | 1.0 | 57.1 | 0.003 | 49.8 |
Others 2 | 115.3 | - | 55.5 | - | 24.1 |
Category | Principle | Advantage | Disadvantage |
---|---|---|---|
Aerobic composting | For a home that carries out composting using aerobic microorganisms, a continuous air supply is required | Short time required for composting | High energy consumption; odors |
Anaerobic composting | Food stays for a long time in an enclosed space to decompose; compost and methane gas are produced as by-products | Degree of loss is large | Decomposition is slow |
Vermicomposting | Compost production by fermenting food waste and providing it as food for earthworms | Low initial facility investment | Limitation of application in urban areas due to odors |
Classification | Hazardous Substances | Acceptance Criteria |
---|---|---|
Management target: heavy metal | Lead (Pb) | 20 ppm |
Mercury (Hg) | 0.5 ppm | |
Cadmium (Cd) | 50 ppm | |
Management target: major mycotoxin | Aflatoxin B1, B2, G1, G2 | 50 ppb |
Ochratoxin | 250 ppb | |
Management target: minor mycotoxin | Deoxynivalenol (vomitoxin) | 10,000 ppb |
Zearalenone | 3000 ppb | |
Fusarium B1 and B2 | 60,000 ppb | |
T-2/HT-2 | 500 ppb | |
Management target: other safety concerns | Free gossypol | 1200 ppm |
Cyanide | 50 ppm | |
Salmonella | Not detected |
Category | Total | Feed Processing | Composting/ Liquid Fertilizing | Bio Gasification | Purification | Others (e.g., Incineration) |
---|---|---|---|---|---|---|
Total | 65.37 (100) | 1.89 (2.9) | 50.15 (76.7) | 3.75 (5.7) | 6.80 (10.4) | 2.78 (4.3) |
Food waste | 5.22 (100) | 1.89 (36.2) | 1.99 (38.1) | 65 (12.5) | - | 69 (13.2) |
Livestock excretion | 55.93 (100) | - | 48.16 (86.1) | 92 (1.6) | 6.80 (12.2) | 5 (0.1) |
Sewage sludge | 4.22 (100) | - | - | 2.18 (51.7) | - | 2.04 (48.3) |
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Lee, E.; Shurson, G.; Oh, S.-H.; Jang, J.-C. The Management of Food Waste Recycling for a Sustainable Future: A Case Study on South Korea. Sustainability 2024, 16, 854. https://doi.org/10.3390/su16020854
Lee E, Shurson G, Oh S-H, Jang J-C. The Management of Food Waste Recycling for a Sustainable Future: A Case Study on South Korea. Sustainability. 2024; 16(2):854. https://doi.org/10.3390/su16020854
Chicago/Turabian StyleLee, Esther, Gerald Shurson, Sang-Hyon Oh, and Jae-Cheol Jang. 2024. "The Management of Food Waste Recycling for a Sustainable Future: A Case Study on South Korea" Sustainability 16, no. 2: 854. https://doi.org/10.3390/su16020854
APA StyleLee, E., Shurson, G., Oh, S. -H., & Jang, J. -C. (2024). The Management of Food Waste Recycling for a Sustainable Future: A Case Study on South Korea. Sustainability, 16(2), 854. https://doi.org/10.3390/su16020854